The evolution of quantum computing technologies has been advancing at a steady pace in the recent years, and the current trend suggests that it will become available at scale for commercial purposes in the near future. The acceleration can be boosted by pooling compute infrastructures to either parallelize algorithm execution or solve bigger instances that are not feasible on a single quantum computer, which requires an underlying Quantum Internet: the interconnection of quantum computers by quantum links and repeaters to exchange entangled quantum bits. However, Quantum Internet research so far has been focused on provisioning point-to-point flows only, which is suitable for (e.g.) quantum sensing and metrology, but not for distributed quantum computing. In this paper, after a primer on quantum computing and networking, we investigate the requirements and objectives of smart computing on distributed nodes from the perspective of quantum network provisioning. We then design a resource allocation strategy that is evaluated through a comprehensive simulation campaign, whose results highlight the key features and performance issues, and lead the way to further investigation in this direction.
翻译:近年来,量子计算技术的演变一直稳步推进,目前的趋势表明,在近期内,数量计算技术将大规模地用于商业目的。通过将基础设施合并计算,将算法执行平行化,或解决单量子计算机不可行的大事件,可以加速加速速度。这需要基本的量子计算机互联网:量子链接和中继器将量子计算机连接起来,以交换缠绕的量子位。然而,量子互联网研究迄今一直侧重于提供点对点流,这适合(例如)量子感测和计量学,但不适合分布量子计算。在本文件中,在量子计算和联网的初级读本之后,我们从量子网络提供的角度,调查在分布节点上进行智能计算的要求和目标。然后,我们设计一个资源分配战略,通过全面模拟活动进行评估,其结果突出关键特征和性能问题,并引导进一步调查这一方向。